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用于室内空气质量监测的温度调制氧化石墨烯电阻湿度传感器。

Temperature-modulated graphene oxide resistive humidity sensor for indoor air quality monitoring.

机构信息

Department of Engineering, Electrical Engineering Division, University of Cambridge, 9 JJ Thomson Avenue, CB3 0FA, Cambridge, UK.

Department of Physics, Indian Institute of Technology, Kharagpur, 721302, India.

出版信息

Nanoscale. 2016 Feb 28;8(8):4565-72. doi: 10.1039/c5nr08598e.

Abstract

In this paper we present a temperature-modulated graphene oxide (GO) resistive humidity sensor that employs complementary-metal-oxide-semiconductor (CMOS) micro-electro-mechanical-system (MEMS) micro-hotplate technology for the monitoring and control of indoor air quality (IAQ). GO powder is obtained by chemical exfoliation, dispersed in water and deposited via ink-jet printing onto a low power micro-hotplate. Atomic force microscopy (AFM) and transmission electron microscopy (TEM) show the typical layered and wrinkled morphology of the GO. Raman spectroscopy, X-ray photoelectron spectroscopy (XPS) and Fourier transform infra-red (FTIR) spectroscopy indicate that the GO flakes possess a significant number of oxygen containing functional groups (epoxy, carbonyl, hydroxyl) extremely attractive for humidity detection. Electro-thermal characterisation of the micro-hotplates shows a thermal efficiency of 0.11 mW per °C, resulting in a sensor DC power consumption of only 2.75 mW at 50 °C. When operated in an isothermal mode, the sensor response is detrimentally affected by significant drift, hysteretic behaviour, slow response/recovery times and hence poor RH level discrimination. Conversely, a temperature modulation technique coupled with a differential readout methodology results in a significant reduction of the sensor drift, improved linear response with a sensitivity of 0.14 mV per %, resolution below 5%, and a maximum hysteresis of ±5%; response and recovery times equal to 189 ± 49 s and 89 ± 5 s, respectively. These performance parameters satisfy current IAQ monitoring requirements. We have thus demonstrated the effectiveness of integrating GO on a micro-hotplate CMOS-compatible platform enabling temperature modulation schemes to be easily applied in order to achieve compact, low power, low cost humidity IAQ monitoring.

摘要

本文提出了一种基于温度调制的石墨烯氧化物(GO)电阻式湿度传感器,该传感器采用互补金属氧化物半导体(CMOS)微机电系统(MEMS)微热板技术,用于监测和控制室内空气质量(IAQ)。GO 粉末通过化学剥离法获得,分散在水中,并通过喷墨打印沉积在低功率微热板上。原子力显微镜(AFM)和透射电子显微镜(TEM)显示了 GO 的典型层状和褶皱形态。拉曼光谱、X 射线光电子能谱(XPS)和傅里叶变换红外(FTIR)光谱表明,GO 薄片具有大量含氧官能团(环氧、羰基、羟基),非常适合湿度检测。微热板的电热特性表明其热效率为 0.11 mW/°C,因此在 50°C 时,传感器的直流功耗仅为 2.75 mW。当在等温模式下工作时,传感器响应受到显著漂移、滞后行为、响应和恢复时间缓慢的不利影响,因此对 RH 水平的区分能力较差。相反,温度调制技术与差分读出方法相结合,可显著减少传感器漂移,提高线性响应,灵敏度为 0.14 mV/%,分辨率低于 5%,最大滞后±5%;响应和恢复时间分别为 189±49 s 和 89±5 s。这些性能参数满足当前的 IAQ 监测要求。因此,我们证明了将 GO 集成到与 CMOS 兼容的微热板平台上的有效性,从而可以轻松应用温度调制方案,以实现紧凑、低功耗、低成本的湿度 IAQ 监测。

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